A common thread in life science research today is the need to organize and access the vast array of potential information inherent in complex molecular systems. In drug discovery, the beads in combinatorial libraries are tagged with series of organic molecules to facilitate their identification. Genomics projects rely on spatially-defined planar arrays to monitor reactions of hundreds or thousands of different oligonucleotides. In the macroscopic world, complex systems are often simplified by bar coding, a technology that tremendously streamlines data collection and identification. This proposal relates to nanometer-scale metallic bar codes. Its foundation rests on very recently-developed chemistry to produce free-standing, cylindrically-shaped colloidal metal nanoparticles (30 - 200 nm in width, 0.4 - 4 mum length) in which the metal composition can be alternated (e.g. Pt-Au-Pt-Au-Pt) along the length, and in which the metal segments can be both length-tuned and selectively chemically functionalized. The proposal further exploits the finding that intrinsic differences in reflectivity, permit metal segments in individual rods to be visualized by conventional optical microscopy. These innovations have brought the notion of the bar code (and the bar code reader) to biologically-relevant length scales. If properly developed, these novel materials could have an enormous impact in life science, in areas as diverse as combinatorial organic synthesis, analysis of gene expression, detection of single nucleotide polymorphisms and genotyping, high throughput screening, simultaneous (multipexed) bioassays, and even flow cytometry: in short, in any activity in which identifying and tracking a large number of molecules or molecular assemblies is necessary or desirable. Accordingly, this proposal aims to develop and/or improve bar code synthesis, bar code readout, bioassay readout, and bar code surface chemistry, so as to maximize their potential utility. To that end, specific research milestones for the proposed work include the following: (i) fabrication of metallic bar codes with up to twelve distinguishable segments, using up to six different metals; (ii) demonstration of programmable, automated synthesis of nanoscale bar codes; (iii) adaptation of high-resolution bar code identification (ID) to both narrow, time-varying and wide, static fields of view; (iv) development of instrumentation capable of simultaneous bar code ID and fluorescence bioassay readout; (v) demonstration of a novel and highly general detection mechanism that allows in a mixture of many different barcodes, each with different chemistry, only those undergoing a chemical reaction to be visualized; and (vi) simultaneous quantitation of three different analytes on a single bar code.

Agency
National Institute of Health (NIH)
Institute
National Institute of Biomedical Imaging and Bioengineering (NIBIB)
Type
Research Project (R01)
Project #
8R01EB000268-03
Application #
6536478
Study Section
Special Emphasis Panel (ZRG1-BMT (01))
Program Officer
Korte, Brenda
Project Start
2000-08-04
Project End
2004-06-30
Budget Start
2002-07-01
Budget End
2003-06-30
Support Year
3
Fiscal Year
2002
Total Cost
$185,616
Indirect Cost
Name
Pennsylvania State University
Department
Chemistry
Type
Schools of Arts and Sciences
DUNS #
City
University Park
State
PA
Country
United States
Zip Code
16802
Smith, Benjamin D; Fichthorn, Kristen A; Kirby, David J et al. (2014) Asymmetric van der Waals forces drive orientation of compositionally anisotropic nanocylinders within smectic arrays: experiment and simulation. ACS Nano 8:657-70
Dean, Stacey L; Morrow, Thomas J; Patrick, Susan et al. (2013) Biorecognition by DNA oligonucleotides after exposure to photoresists and resist removers. Langmuir 29:11535-45
Smith, Benjamin D; Mayer, Theresa S; Keating, Christine D (2012) Deterministic assembly of functional nanostructures using nonuniform electric fields. Annu Rev Phys Chem 63:241-63
Smith, Benjamin D; Kirby, David J; Keating, Christine D (2011) Vertical arrays of anisotropic particles by gravity-driven self-assembly. Small 7:781-7
Cederquist, Kristin B; Dean, Stacey L; Keating, Christine D (2010) Encoded anisotropic particles for multiplexed bioanalysis. Wiley Interdiscip Rev Nanomed Nanobiotechnol 2:578-600
Dean, Stacey L; Stapleton, Joshua J; Keating, Christine D (2010) Organically modified silicas on metal nanowires. Langmuir 26:14861-70
Cederquist, Kristin B; Keating, Christine D (2010) Hybridization efficiency of molecular beacons bound to gold nanowires: effect of surface coverage and target length. Langmuir 26:18273-80
Triplett, Derek A; Quimby, Lisa M; Smith, Benjamin D et al. (2010) Assembly of gold nanowires by sedimentation from suspension: Experiments and simulation. J Phys Chem C Nanomater Interfaces 114:7346-7355
Clawson, Gary A; Keating, Christine; Bhiladvala, Rustom et al. (2009) An RNA Sensor Platform for CTC Detection: Nanotechnology for Detection of Tumour Cell Marker RNAs. Bioforum Eur 13:10-11
Morrow, Thomas J; Li, Mingwei; Kim, Jaekyun et al. (2009) Programmed assembly of DNA-coated nanowire devices. Science 323:352

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